Cooperative population coding facilitates efficient sound-source separability by adaptation to input statistics

Gleiss, Helge and Encke, Jörg and Lingner, Andrea and Jennings, Todd R. and Brosel, Sonja and Kunz, Lars and Grothe, Benedikt and Pecka, Michael and Bizley, Jennifer K. (2019) Cooperative population coding facilitates efficient sound-source separability by adaptation to input statistics. PLOS Biology, 17 (7). e3000150. ISSN 1545-7885

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Abstract

Our sensory environment changes constantly. Accordingly, neural systems continually adapt to the concurrent stimulus statistics to remain sensitive over a wide range of conditions. Such dynamic range adaptation (DRA) is assumed to increase both the effectiveness of the neuronal code and perceptual sensitivity. However, direct demonstrations of DRA-based efficient neuronal processing that also produces perceptual benefits are lacking. Here, we investigated the impact of DRA on spatial coding in the rodent brain and the perception of human listeners. Complex spatial stimulation with dynamically changing source locations elicited prominent DRA already on the initial spatial processing stage, the Lateral Superior Olive (LSO) of gerbils. Surprisingly, on the level of individual neurons, DRA diminished spatial tuning because of large response variability across trials. However, when considering single-trial population averages of multiple neurons, DRA enhanced the coding efficiency specifically for the concurrently most probable source locations. Intrinsic LSO population imaging of energy consumption combined with pharmacology revealed that a slow-acting LSO gain-control mechanism distributes activity across a group of neurons during DRA, thereby enhancing population coding efficiency. Strikingly, such “efficient cooperative coding” also improved neuronal source separability specifically for the locations that were most likely to occur. These location-specific enhancements in neuronal coding were paralleled by human listeners exhibiting a selective improvement in spatial resolution. We conclude that, contrary to canonical models of sensory encoding, the primary motive of early spatial processing is efficiency optimization of neural populations for enhanced source separability in the concurrent environment.

Item Type: Article
Subjects: STM Article > Biological Science
Depositing User: Unnamed user with email support@stmarticle.org
Date Deposited: 21 Jan 2023 06:21
Last Modified: 02 May 2024 09:59
URI: http://publish.journalgazett.co.in/id/eprint/239

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